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Analysis of Translation Initiation During Stress Conditions by Polysome Profiling
Published on: May 19, 2014
Accelerated poly(A) loss on alpha-tubulin mRNAs during protein synthesis inhibition in Chlamydomonas
E J Baker1, D R Diener, J L Rosenbaum
1Department of Biology, Yale University, New Haven, CT 06511.
Abstract:
Detachment of flagella in Chlamydomonas reinhardii stimulates a rapid accumulation of tubulin mRNAs. The induced tubulin mRNAs are normally rapidly degraded following flagellar regeneration, but inhibition of protein synthesis with cycloheximide prevents their degradation. alpha-Tubulin poly(A) tail lengths were measured during normal accumulation and degradation, and in cycloheximide-treated cells. To measure alpha-tubulin mRNA poly(A) chain lengths with high resolution, specific 3' fragments of alpha 1- and alpha 2-tubulin mRNAs, generated by RNase H digestion of mRNA-oligonucleotide hybrids, were sized by Northern analysis. Both alpha-tubulin mRNAs have a newly synthesized poly(A) chain of about 110 adenylate residues. The poly(A) tails shorten with time, and show an average length of 40 to 60 adenylate residues by 90 minutes after deflagellation, at which time induced alpha-tubulin mRNA is being rapidly degraded. Poly(A) loss is significantly accelerated in cycloheximide-treated cells, and this loss is not attributible simply to the longer time the stabilized molecules spend in the cytoplasm. A large fraction of alpha-tubulin mRNA accumulates as mRNA with very short poly(A) tails (less than 10 residues) in the presence of cycloheximide, indicating that deadenylated alpha-tubulin mRNAs can be stable in vivo, at least in the absence of protein synthesis. The rate and extent of poly(A) loss in cycloheximide are greater for alpha 2-tubulin mRNA than for alpha 1-tubulin mRNA. This difference cannot be attributed to differential ribosome loading. This finding is interesting in that the two mRNAs are very similar in sequence with the exception of their 3' untranslated regions.
Insights
Flagellar detachment in Chlamydomonas reinhardtii boosts tubulin messenger RNA (mRNA) levels. Protein synthesis inhibition stabilizes these mRNAs by altering their poly(A) tail lengths, impacting tubulin gene expression.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Flagellar detachment in Chlamydomonas reinhardtii triggers tubulin messenger RNA (mRNA) accumulation.
- Induced tubulin mRNAs are typically degraded during flagellar regeneration.
Purpose of the Study:
- To investigate the role of poly(A) tail length in tubulin mRNA regulation during flagellar regeneration.
- To determine the impact of protein synthesis inhibition on tubulin mRNA stability and poly(A) tail dynamics.
Main Methods:
- Quantification of alpha-tubulin messenger RNA (mRNA) poly(A) tail lengths using Northern analysis after RNase H digestion.
- Measurement of poly(A) tail shortening during normal flagellar regeneration and in cycloheximide-treated cells.
Main Results:
- Newly synthesized alpha-tubulin messenger RNA (mRNA) possesses poly(A) tails of approximately 110 adenylate residues.
- Poly(A) tails shorten over time, correlating with mRNA degradation during regeneration.
- Cycloheximide treatment accelerates poly(A) tail loss, leading to accumulation of deadenylated, yet stable, alpha-tubulin messenger RNA (mRNA).
- Differential rates of poly(A) loss were observed between alpha 1- and alpha 2-tubulin messenger RNA (mRNA), despite sequence similarities.
Conclusions:
- Poly(A) tail shortening is a key mechanism for regulating tubulin messenger RNA (mRNA) turnover during flagellar regeneration.
- Deadenylated messenger RNA (mRNA) can be stable in the absence of protein synthesis, suggesting a complex regulatory mechanism.
- Differences in poly(A) tail dynamics between alpha-tubulin messenger RNA (mRNA) variants may be influenced by their 3' untranslated regions.
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